EP0729962A1 - A boronic acid compound having a binaphthyl group - Google Patents

A boronic acid compound having a binaphthyl group Download PDF

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EP0729962A1
EP0729962A1 EP95309507A EP95309507A EP0729962A1 EP 0729962 A1 EP0729962 A1 EP 0729962A1 EP 95309507 A EP95309507 A EP 95309507A EP 95309507 A EP95309507 A EP 95309507A EP 0729962 A1 EP0729962 A1 EP 0729962A1
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compound
saccharide
boronic acid
glucose
isomer
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French (fr)
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EP0729962B1 (en
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Tony James
Seiji Shinkai
Saman Sandanayake
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Japan Science and Technology Agency
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Research Development Corp of Japan
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07FACYCLIC, CARBOCYCLIC OR HETEROCYCLIC COMPOUNDS CONTAINING ELEMENTS OTHER THAN CARBON, HYDROGEN, HALOGEN, OXYGEN, NITROGEN, SULFUR, SELENIUM OR TELLURIUM
    • C07F5/00Compounds containing elements of Groups 3 or 13 of the Periodic System
    • C07F5/02Boron compounds
    • C07F5/025Boronic and borinic acid compounds
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N33/00Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
    • G01N33/48Biological material, e.g. blood, urine; Haemocytometers
    • G01N33/50Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
    • G01N33/66Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing involving blood sugars, e.g. galactose

Definitions

  • the present invention relates to a boronic acid compound, and particularly to a novel chiral boronic acid compound capable of binding to polyols, particularly to saccharides, which compound is suitable for use in analysis or separation of the polyols.
  • Polyols as typified by saccharides, occur widely in nature and play an important role in living organisms. They are also one of the key materials used in industry. Polyols are characterized by their complexity and variety. In particular, a saccharide is composed of the D-form and L-form, which are known as optical isomers. The separation of such isomers (optical resolution) is of great importance in many fields, such as in synthesizing pharmaceutical substances. The contamination by an undesired optical isomer may cause not only a lowering of the pharmaceutical efficacy but also serious side-effects in the patient. However optical isomers are difficult to selectively isolate or detect, since they have identical physical properties such as boiling point and melting point.
  • One possible approach for the separation and/or analysis of polyols such as saccharides would be the utilization of a substance capable of selectively binding to a target polyol in which the binding can be externally quantified.
  • the present inventors have now succeeded in synthesizing for the first time a novel boronic acid compound which is able to discriminate between the D-form and L-form of a saccharide when necessary.
  • R 1 and R 2 are generally the same, but may be different.
  • R 1 and R 2 are selected from the group consisting of alkoxy groups having 1 to 4 carbon atoms and OH (hydroxyl group), with methoxy, ethoxy or OH being particularly preferred.
  • n+m is 2 or 3 and x+y is 2 or 3, in which each of n, m, x and y may be zero.
  • n and x are generally the same but may be different.
  • m and y are generally the same but may be different.
  • each of n, m, x and y is 1.
  • the boronic acid compound having a binaphthyl group of the present invention as expressed by the aforesaid formulas (1) and (2) has a chiral structure, i.e.
  • the boronic acid compound of the present invention is characterized by the fact that the R-form and S-form thereof each exhibits an extremely high selectivity to one of the enantiomers of a polyol, particularly of a saccharide.
  • the R-form of the boronic acid compound of the following formula(3) has a high selectivity to D-form of a mono-saccharide such as glucose and fructose, and emits an increased fluorescence upon binding to such D-form, while the S-form of the same compound exhibits a high selectivity to L-form of the mono-saccharide and emits an increased fluorescence upon binding to the L-form.
  • a boronic acid compound having a binaphthyl group of the present invention can be used for the separation and analysis of a specific polyol including saccharides since it is capable of binding to such polyol where the binding with the polyol can be read out as fluorescence.
  • the binding between the polyol (saccharide) and the fluorescent compound can easily be cleaved by changing the pH of the system through an appropriate acid, thereby restoring the saccharide.
  • a saccharide-detecting kit comprising the R-form and/or S-form of a fluorescent compound defined by any of the aforesaid formulas in a solid (powdery) or crystalline state, a buffer solution and a set of standard solutions.
  • the standard solutions are varied concentrations of the saccharide to be detected.
  • the calibration of a spectrophotometer for the detection is conducted by dissolving the compound of the invention in the standard solutions with the buffer solution and measuring fluorescent intensity against varied saccharide solutions.
  • kits composed of the R-form of the compound of the formula(3) are effectively utilized.
  • a kit composed of the S-form of the compound(3) is effective for detecting L-glucose or L-fructose.
  • the compounds of the present invention can be applied to the detection of a racemic mixture.
  • kits composed of R-form and/or S-form of the compound of the formula(3) is used in which the fluorescent intensity of the R-form of the compound increases with increasing D-glucose and decreases with increasing L-glucose, and vice versa for the S-form of the same compound.
  • the compound of the present invention may be used in a chromatographic detection method for saccharide.
  • the compound is carried on an appropriate support and packed in a column.
  • a saccharide-containing sample passes through the column, a complex will form between the compound and the saccharide emitting fluorescence measurable by a suitable means.
  • Figure 1 is a scheme illustrating the synthesis of a boronic acid of the present invention, in which Me represents methyl.
  • Figure 2 demonstrates fluorescence intensities of the R-isomer of the boronic acid compound of the present invention in the presence of monosaccharides.
  • Figure 3 demonstrates fluorescence intensities of the S-isomer of the boronic acid compound of the present invention in the presence of monosaccharides.
  • the boronic acid compound can be prepared by synthetic routes as exemplified in Fig.1, in which each of n, m, x and y is 1.
  • Fig.1 in which each of n, m, x and y is 1.
  • carbon atoms and hydrogen atoms are not shown as conventionally done.
  • the OH groups at the 1 and 1' positions of binaphthol are alkoxylated.
  • the alkoxylation may be conducted, in the presence of an alkali such as potassium carbonate, using methyl iodide in the case of R 1 and R 2 being methoxy as in Fig.1, and using ethyl bromide, propyl bromide and butyl bromide in the case where both R 1 and R 2 are ethoxy, propoxy and butoxy groups, respectively (route i).
  • the route(i) is omitted when R 1 and R 2 are OH.
  • the mass of the diglycerol boronate ester is 780.
  • the R-isomer and S-isomer of the boronic acid compound of the formula(3) as prepared in Example 1 were measured for fluorescence in the presence of saccharides in order to evaluate characteristic properties thereof.
  • the R-isomer and the S-isomer were each resolved at a concentration of 0.00001M in a 33.3% methanol aqueous solution with a pH of 7.77 (buffered with 0.01M KCl, 0.002642M KH 2 PO 4 , 0.00264M Na 2 HPO 4 ).
  • To the solution were added dropwise portions of saccharide (D-glucose, L-glucose, D-fructose or L-fructose) and fluorescence intensity was measured on a Hitachi F-4500 fluorospectrophotometer with a Hewlett Pachard VETRA 286/12 computer.
  • the wavelength for excitation is 289nm, while the wavelength for emission is 358nm.
  • Fig.2 results are shown in Fig.2 for the R-isomer and in Fig.3 for the S-isomer.
  • the R-isomer exhibits much higher fluorescence intensities in the presence of D-glucose or D-fructose than in the presence of L-glucose and L-fructose (Fig.2).
  • the S-isomer shows higher fluorescence intensities in the presence of L-glucose or L-fructose than in the presence of D-glucose or D-fructose (Fig.3).
  • the stability constants(K) were also determined from the titration curves in terms of fluorescence intensity versus saccharide concentration assuming that a 1:1 complex is formed between the boronic acid compound and the saccharide.
  • the values of log K are 3.3 with D-glucose, 3.1 with L-glucose, 4.0 with D-fructose and 3.5 with L-fructose, all being higher with D-isomer of saccharide.
  • the values of log K are 3.4 with D-glucose, 3.5 with L-glucose, 3.7 with D-fructose and 4.0 with L-fructose, all being higher with D-isomer of saccharide.
  • the boronic acid compound having a binaphthyl group as expressed by the formula(3) has a high selectivity to the D-isomer of a monosaccharide when it is in the form of R-isomer, while it exhibits a high selectivity to the L-isomer of the monosaccharide when in the form of S-isomer, all emitting strong fluorescence upon binding to the respective saccharide isomers.

Abstract

A fluorescent compound of the following general formula:
Figure imga0001
in which R1 and R2 are generally the same but may be different and each selected from the group consisting of alkoxy groups having 1 to 4 carbon atoms, n+m is 2 or 3, x+y is 2 or 3 in which each of n, m, x and y may be zero. The compound has a chiral structure consisting of R-isomer and S-isomer which respectively bind to D-form and L-form of a polyol (a saccharide) emitting fluorescence. The compound is therefore suitable for use in the chiral discrimination of the saccharide.

Description

    Field of Invention
  • The present invention relates to a boronic acid compound, and particularly to a novel chiral boronic acid compound capable of binding to polyols, particularly to saccharides, which compound is suitable for use in analysis or separation of the polyols.
  • Background of the Invention
  • Polyols, as typified by saccharides, occur widely in nature and play an important role in living organisms. They are also one of the key materials used in industry. Polyols are characterized by their complexity and variety. In particular, a saccharide is composed of the D-form and L-form, which are known as optical isomers. The separation of such isomers (optical resolution) is of great importance in many fields, such as in synthesizing pharmaceutical substances. The contamination by an undesired optical isomer may cause not only a lowering of the pharmaceutical efficacy but also serious side-effects in the patient. However optical isomers are difficult to selectively isolate or detect, since they have identical physical properties such as boiling point and melting point. If it should be possible to selectively detect or isolate a polyol of a specific structure, that is, to selectively detect or isolate the D-form or L-form of isomers, it would not only make a great contribution to the world of science but also give rise to a variety of industrial applications. However, no practical measures seem to be available for this purpose.
  • Summary of the Invention
  • One possible approach for the separation and/or analysis of polyols such as saccharides would be the utilization of a substance capable of selectively binding to a target polyol in which the binding can be externally quantified.
  • It is well known that a boronic acid group, B(OH)2, covalently reacts with OH groups present in such compounds as saccharides. Based on this phenomenon, the present inventors previously created a novel phenylboronic acid compound which emits strong fluorescence when combined with glucose (Japanese Patent Application No. 147061/1994). While the compound is suitable for use in the detection of a specific saccharide, it is unable to discriminate between the D-form and L-form of the saccharide.
  • The present inventors have now succeeded in synthesizing for the first time a novel boronic acid compound which is able to discriminate between the D-form and L-form of a saccharide when necessary.
  • Thus, according to the present invention there is provided a novel chiral boronic acid compound having a binaphthyl group which can be expressed by the following general formula(1):
    Figure imgb0001

       In the formula(1), R1 and R2 are generally the same, but may be different. R1 and R2 are selected from the group consisting of alkoxy groups having 1 to 4 carbon atoms and OH (hydroxyl group), with methoxy, ethoxy or OH being particularly preferred.
  • In the above formula(1), n+m is 2 or 3 and x+y is 2 or 3, in which each of n, m, x and y may be zero. n and x are generally the same but may be different. m and y are generally the same but may be different. Most generally, each of n, m, x and y is 1. Thus, a preferred example of the compounds falling within the definition of the formula(1) can be expressed by the following formula(2):
    Figure imgb0002

       The boronic acid compound having a binaphthyl group of the present invention as expressed by the aforesaid formulas (1) and (2) has a chiral structure, i.e. a mirror-image (enantiomer) structure consisting of R-form (R-isomer) and S-form (S-isomer). Thus, the formula(1) (or formula(2)) expresses either R-form or S-form of the compound. The boronic acid compound of the present invention is characterized by the fact that the R-form and S-form thereof each exhibits an extremely high selectivity to one of the enantiomers of a polyol, particularly of a saccharide.
  • Specifically, the R-form of the boronic acid compound of the following formula(3) has a high selectivity to D-form of a mono-saccharide such as glucose and fructose, and emits an increased fluorescence upon binding to such D-form, while the S-form of the same compound exhibits a high selectivity to L-form of the mono-saccharide and emits an increased fluorescence upon binding to the L-form.
    Figure imgb0003

       Thus, a boronic acid compound having a binaphthyl group of the present invention can be used for the separation and analysis of a specific polyol including saccharides since it is capable of binding to such polyol where the binding with the polyol can be read out as fluorescence. The binding between the polyol (saccharide) and the fluorescent compound can easily be cleaved by changing the pH of the system through an appropriate acid, thereby restoring the saccharide.
  • Analysis or detection of polyols (saccharides) may be conveniently carried out with a kit composed of the above-mentioned boronic acid compound(s). Thus, another aspect of the present invention provides a saccharide-detecting kit comprising the R-form and/or S-form of a fluorescent compound defined by any of the aforesaid formulas in a solid (powdery) or crystalline state, a buffer solution and a set of standard solutions. The standard solutions are varied concentrations of the saccharide to be detected. The calibration of a spectrophotometer for the detection is conducted by dissolving the compound of the invention in the standard solutions with the buffer solution and measuring fluorescent intensity against varied saccharide solutions. Thus, in the detection of D-glucose or D-fructose, for example, such a kit composed of the R-form of the compound of the formula(3) is effectively utilized. On the other hand, a kit composed of the S-form of the compound(3) is effective for detecting L-glucose or L-fructose. Furthermore, the compounds of the present invention can be applied to the detection of a racemic mixture. For example, in the detection of a racemic mixture of D-glucose and L-glucose, a kit composed of R-form and/or S-form of the compound of the formula(3) is used in which the fluorescent intensity of the R-form of the compound increases with increasing D-glucose and decreases with increasing L-glucose, and vice versa for the S-form of the same compound.
  • As another embodiment, the compound of the present invention may be used in a chromatographic detection method for saccharide. The compound is carried on an appropriate support and packed in a column. When a saccharide-containing sample passes through the column, a complex will form between the compound and the saccharide emitting fluorescence measurable by a suitable means.
  • Brief Description of the Drawings
  • Figure 1 is a scheme illustrating the synthesis of a boronic acid of the present invention, in which Me represents methyl.
  • Figure 2 demonstrates fluorescence intensities of the R-isomer of the boronic acid compound of the present invention in the presence of monosaccharides.
  • Figure 3 demonstrates fluorescence intensities of the S-isomer of the boronic acid compound of the present invention in the presence of monosaccharides.
  • The boronic acid compound can be prepared by synthetic routes as exemplified in Fig.1, in which each of n, m, x and y is 1. In the chemical formulas herein provided including those in Fig.1, carbon atoms and hydrogen atoms are not shown as conventionally done.
  • Referring to Fig.1, the OH groups at the 1 and 1' positions of binaphthol (commercially available) are alkoxylated. The alkoxylation may be conducted, in the presence of an alkali such as potassium carbonate, using methyl iodide in the case of R1 and R2 being methoxy as in Fig.1, and using ethyl bromide, propyl bromide and butyl bromide in the case where both R1 and R2 are ethoxy, propoxy and butoxy groups, respectively (route i). The route(i) is omitted when R1 and R2 are OH.
  • Then, the 3 and 3' positions of the resulting compound are formylated in the manner as detailed later in the working example (route ii), followed by the formation of a Schiff's base using methylamine (route iii). The imine thus obtained is allowed to react with NaBH4 to form 3,3'-bis(N-methylaminomethyl) derivative (route iv). Finally, all alkylation reaction is conducted using 2-bromomethylphenyl boronic acid (protected with 2,2'-dimethyl-1,3-propanediol) to form the desired boronic acid having a naphthyl group (route v).
  • The invention will now be illustrated by the following examples.
  • EXAMPLE 1
  • The compound of the above-mentioned formula, i.e., a boronic acid compound falling within the general formula(2) in which R1=R2=methoxy, was prepared by the synthetic routes (i) to (iv) as shown in Fig.1.
    • (i) 25g of R- or S-binaphthol, commercially available from Tokyo Kasei Co. (Tokyo, Japan), 24.6g of methyl iodide and 24.1g of potassium carbonate in 500ml of acetone were refluxed for 3 days. After the solvent was removed, the solid was extracted with dichloromethane/water. The organic layer was then washed with water (3x200ml) to obtain the desired dimethylether.
    • (ii) 20g of the dimethylether of R- or S-binaphthol and 31.2ml of TMEDA (tetramethylethylenediamine : 1,2-bis (dimethylamino)ethane) were mixed in 400ml of benzene. 130ml of 15% butyllithium was then added dropwise to the mixture. The resulting mixture was then stirred at room temperature for 18 hours. 17.1ml of anhydrous DMF was then dropped into the mixture, which was stirred for further 30 minutes. Then, 200ml of 50% hydrochloric acid was added dropwise under cooling. The organic phase was then washed with 100ml brine two times, while the aqueous phase was washed with 100ml of methylene chloride two times. The organic phase was then dried over magnesium sulfate and the solvent was removed to give the crude aldehyde.
      The crude aldehyde 5g was then purified by column chromatography (silica gel). The product was eluted by 10% ethyl acetone / dichloromethane. The starting material and monoaldehyde were removed by 50% hexane / dichloromethane and 100% dichloromethane respectively. The yield of the dialdehyde was 3g.
    • (iii) 3g of the dialdehyde was then dissolved in 100ml of 40% methylene / methanol and stirred overnight at room temperature. The solvent was removed to give the desired imine.
    • (iv) The imine obtained in the route(iii) was dissolved in 50ml of anhydrous methanol and 2g of sodium borohydride(NaBH4) was added under cooling. The resulting mixture was stirred at room temperature for 15 hours. The solvent was removed and the solid was extracted with dichloromethane / water. The organic phase was washed with 100ml of distilled water three times. The solvent was then removed to give the desired amine quantitatively.
    • (v) The 1g of the amine as obtained in the above, 1.7g of the bromomethyl protected boronic acid and 1g of potassium carbonate were mixed in 100ml of 50% acetonitrile / THF (tetrahydrofuran). The resulting mixture was refluxed overnight and filtered, and then the solvent was removed. The solid was washed with hexane and triturated with ethylacetate. Yield was 300mg.
  • The percentage enantiomeric excess (ee) and optical rotation for the boronic acid product of the formula(3) are: >94% ee and [α ] 25 D
    Figure imgb0004
    = +12.7 ° (c 0.272, in methanol) for R-form (R-isomer), and >99% ee and [ α ] 25 D
    Figure imgb0005
    = -13.1° (c 0.4, in methanol) for S-form (S-isomer). The result of mass spectrometric analysis for both R-form and S-form of the boronic acid compound is: m/z= 781[m+1] (SIMS(+), glycerol). The mass of the diglycerol boronate ester is 780.
  • EXAMPLE 2
  • Two boronic acid compounds were prepared in which R1=R2=OH and R1=R2=ethoxy in the aforesaid general formula (2), respectively. The compounds were prepared in the manner as described in Example 1, except that step (i) was omitted for the compound of R1=R2=OH and ethyl bromide was used in step (i) instead of methyl iodide for the compound of R1=R2= ethoxy.
  • The mass spectrometric analysis of the compounds showed that m/z (SIMS(+)) are 777 in the case of R1 and R2 being OH and 833 in the case of R1 and R2 being ethoxy, respectively, indicating that the desired boronic acid compounds were successfully obtained.
  • EXAMPLE 3
  • The R-isomer and S-isomer of the boronic acid compound of the formula(3) as prepared in Example 1 were measured for fluorescence in the presence of saccharides in order to evaluate characteristic properties thereof.
  • The R-isomer and the S-isomer were each resolved at a concentration of 0.00001M in a 33.3% methanol aqueous solution with a pH of 7.77 (buffered with 0.01M KCl, 0.002642M KH2PO4, 0.00264M Na2HPO4). To the solution were added dropwise portions of saccharide (D-glucose, L-glucose, D-fructose or L-fructose) and fluorescence intensity was measured on a Hitachi F-4500 fluorospectrophotometer with a Hewlett Pachard VETRA 286/12 computer. The wavelength for excitation is 289nm, while the wavelength for emission is 358nm.
  • The results are shown in Fig.2 for the R-isomer and in Fig.3 for the S-isomer. As can be seen from the figures, the R-isomer exhibits much higher fluorescence intensities in the presence of D-glucose or D-fructose than in the presence of L-glucose and L-fructose (Fig.2). In contrast, the S-isomer shows higher fluorescence intensities in the presence of L-glucose or L-fructose than in the presence of D-glucose or D-fructose (Fig.3).
  • The stability constants(K) were also determined from the titration curves in terms of fluorescence intensity versus saccharide concentration assuming that a 1:1 complex is formed between the boronic acid compound and the saccharide. For R-isomers, the values of log K are 3.3 with D-glucose, 3.1 with L-glucose, 4.0 with D-fructose and 3.5 with L-fructose, all being higher with D-isomer of saccharide. For S-isomers the values of log K are 3.4 with D-glucose, 3.5 with L-glucose, 3.7 with D-fructose and 4.0 with L-fructose, all being higher with D-isomer of saccharide.
  • From these results it is understood that the boronic acid compound having a binaphthyl group as expressed by the formula(3) has a high selectivity to the D-isomer of a monosaccharide when it is in the form of R-isomer, while it exhibits a high selectivity to the L-isomer of the monosaccharide when in the form of S-isomer, all emitting strong fluorescence upon binding to the respective saccharide isomers.

Claims (7)

  1. A fluorescent compound of the following general formula:
    Figure imgb0006
    in which R1 and R2 are generally the same but may be different and each selected from the group consisting of alkoxy groups having 1 to 4 carbon atoms, n+m is 2 or 3, x+y is 2 or 3 in which each of n, m, x and y may be zero, and the above formula expresses either R-form or S-form of the compound.
  2. A fluorescent compound of the following general formula:
    Figure imgb0007
    in which R1 and R2 are generally the same but may be different and each selected from the group consisting of alkoxy groups having 1 to 4 carbon atoms, and the formula expresses either R-form or S-form of the compound.
  3. A fluorescent compound of the following formula :
    Figure imgb0008
    in which the formula expresses either R-form or S-form of the compound.
  4. A saccharide-detecting kit comprising R-form and/or S-form of a fluorescent compound of claim 1 in a solid or crystalline state, a buffer solution and a set of standard solution, the standard solutions being ones at varied concentrations of the saccharide to be detected.
  5. The saccharide-detecting kit of claim 4 wherein the fluorescent compound is the R-form of the compound of claim 3 and the kit is suitable for use in the detection of D-glucose or D-fructose.
  6. The saccharide-detecting kit of claim 4 wherein the fluorescent compound is the S-form of the compound of claim 3 and the kit is suitable for use in the detection of L-glucose or L-fructose.
  7. The saccharide-detecting kit of claim 4 wherein the fluorescent compound is R-form and S-form of the compound of claim 3 and the kit is suitable for the use in the detection of a racemic mixture of glucose or fructose.
EP95309507A 1995-03-03 1995-12-28 A boronic acid compound having a binaphthyl group Expired - Lifetime EP0729962B1 (en)

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US6387672B1 (en) 2000-12-04 2002-05-14 Beckman Coulter, Inc. Photo-induced electron transfer fluorescent sensor molecules
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US6673625B2 (en) 1999-09-15 2004-01-06 The Regents Of The University Of California Saccharide sensing molecules having enhanced fluorescent properties
US6682938B1 (en) 1999-09-15 2004-01-27 The Regents Of The University Of California Glucose sensing molecules having selected fluorescent properties
US6766183B2 (en) 1995-11-22 2004-07-20 Medtronic Minimed, Inc. Long wave fluorophore sensor compounds and other fluorescent sensor compounds in polymers
US6800451B2 (en) 2001-01-05 2004-10-05 Sensors For Medicine And Science, Inc. Detection of glucose in solutions also containing an alpha-hydroxy acid or a beta-diketone
US6927246B2 (en) 2001-02-15 2005-08-09 Medtronic Minimed, Inc. Polymers functionalized with fluorescent boronate motifs and methods for making them
US7045361B2 (en) 2001-09-12 2006-05-16 Medtronic Minimed, Inc. Analyte sensing via acridine-based boronate biosensors
US7358094B2 (en) 2003-05-01 2008-04-15 Bell Michael L Sensor system for saccharides

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JP2799837B2 (en) 1998-09-21
JPH08245643A (en) 1996-09-24

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